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Porous crystals grow into tiny springs

A research team at the University of Osaka has created a porous crystal that grows into a spring-like helix, changing shape as solvent molecules move in and out. The crystal has a high porosity and retains its structure even at high temperatures.

SourceThe University of Osaka·JournalAngewandte Chemie International Edition·TypeExperimental study·DateSep 16, 2026

Organic solvents enable handedness control in inorganic crystals

Researchers have developed a simple crystallization method that achieves chiral resolution under mild conditions, enabling the production of homochiral inorganic crystals. The study uses organic solvents and an achiral crystalline phase to control the growth environment, resulting in single-handed forms of cesium copper chloride.

SourceKumamoto University·JournalCrystal Growth & Design·TypeExperimental study·DateJan 15, 2026

DGIST achieves significant efficiency enhancement of eco-friendly solar cells through simple temperature control

Researchers discovered that rapidly increasing temperature during material thermal processing leads to more orderly crystal growth and smoother charge transport. This results in a substantial improvement in efficiency of eco-friendly solar cells made from antimony selenide, an abundant and eco-friendly material.

SourceDGIST (Daegu Gyeongbuk Institute of Science and Technology)·JournalJournal of Materials Chemistry A·DateOct 27, 2025

World's first practical surface-emitting laser for optical fiber communications developed: advancing miniaturization, energy efficiency, and cost reduction of light sources

Researchers developed world's first practical surface-emitting laser using quantum dots, advancing miniaturization and energy efficiency of light sources. The innovation enables high-performance, scalable structures and cost reductions through mass production.

SourceNational Institute of Information and Communications Technology (NICT)·JournalOptics Express·TypeExperimental study·DateJun 6, 2025

Overcoming stacking constraints in hexagonal boron nitride via metal-organic chemical vapor deposition

Scientists at POSTECH and University of Montpellier successfully synthesized wafer-scale hexagonal boron nitride (hBN) with an AA-stacking configuration using metal-organic chemical vapor deposition (MOCVD). This achievement introduces a novel route for precise stacking control in van der Waals materials.

Breakthrough in materials science: AI reveals secrets of dendritic growth in thin films

A new AI model developed by Tokyo University of Science's researchers predicts dendritic growth in thin films, offering a powerful pathway for optimizing thin-film fabrication. The model analyzes morphology using persistent homology and machine learning with energy analysis, revealing conditions that drive branching behavior.

SourceTokyo University of Science·JournalScience and Technology of Advanced Materials Methods·TypeExperimental study·DateMar 19, 2025

SNU researchers develop a new synthesis technology of single crystal 2D semiconductors, “Hypotaxy,” to enhance the commercialization of next-generation 2D semiconductors

Researchers developed a new growth method leveraging 2D materials as templates to enable the synthesis of perfectly single-crystal TMD films on any substrate. The 'Hypotaxy' technique holds significant industrial potential, allowing for low-temperature growth and precise control over film thickness.

SourceSeoul National University College of Engineering·JournalNature·TypeExperimental study·DateMar 4, 2025

Dynamics of structural transformation for liquid crystalline blue phases

Researchers have uncovered key insights about how liquid crystals transform between different phases using direct simulation and machine learning. This study provides a clearer understanding of the microscopic-level changes in these materials, which could lead to new possibilities for advanced materials development.

SourceKyushu University·JournalProceedings of the National Academy of Sciences·TypeExperimental study·DateDec 2, 2024

Innovating in the corners where atoms meet

Fadi Abdeljawad's team finds that triple junctions, where three nanocrystals meet, are key to maintaining stability and strength of materials. This discovery could lead to designing better nanocrystalline alloys for aerospace and energy industries.

SourceLehigh University·JournalNano Letters·TypeExperimental study·DateOct 16, 2024

Chung-Ang University study reveals a way to enhance the efficiency of perovskite solar cells

Researchers at Chung-Ang University have discovered an additive that enhances the efficiency of perovskite solar cells, resulting in a record-breaking 12.22% efficiency. The additive, 4-phenylthiosemicarbazide, improves stability and reduces defects, paving the way for more accessible and long-lasting solar panels.

SourceChung Ang University·JournalAdvanced Energy Materials·TypeExperimental study·DateJul 30, 2024

Shedding light on perovskite hydrides using a new deposition technique

Researchers develop a new method to grow single-crystal perovskite hydrides, allowing for accurate measurement of intrinsic H- conductivity. The technique enables the production of high-quality crystals with minimal imperfections, paving the way for sustainable energy technologies and hydrogen storage applications.

SourceShibaura Institute of Technology·JournalACS Applied Energy Materials·TypeExperimental study·DateMay 16, 2024

Solving an age-old mystery about crystal formation

University of Houston researcher Peter Vekilov discovers two-step incorporation into crystals, mediated by an intermediate state, solving a 40-year-old riddle. The new paradigm guides the search for solvents and additives to stabilize the intermediate state and slow down unwanted polymorphs.

SourceUniversity of Houston·JournalProceedings of the National Academy of Sciences·DateFeb 5, 2024

Revolutionizing stable and efficient catalysts with Turing structures for hydrogen production

Researchers from City University of Hong Kong developed a novel strategy to engineer stable and efficient ultrathin nanosheet catalysts using Turing structures. This approach effectively resolves the instability problem associated with low-dimensional materials in catalytic systems, enabling efficient and long-lasting hydrogen production.

SourceCity University of Hong Kong·JournalNature Communications·TypeExperimental study·DateJan 8, 2024

Breakthrough synthesis method improves solar cell stability

Researchers have developed a new synthesis method that controls the temperature and duration of the crystallization process to produce 2D halide perovskite layers with ideal thickness and purity. This breakthrough improves the stability and reduces the cost of solar cells, making them a viable option for emerging technologies.

SourceRice University·JournalNature Synthesis·TypeExperimental study·DateOct 26, 2023

Cathode active materials for lithium-ion batteries could be produced at low temperatures

A team of researchers at Hokkaido University has developed a new method to synthesize layered lithium cobalt oxide (LiCoO2) at low temperatures, reducing synthesis time from hours to minutes. The hydroflux process produces crystalline LiCoO2 with properties only marginally inferior to commercially available materials.

SourceHokkaido University·JournalInorganic Chemistry·TypeExperimental study·DateOct 23, 2023

Gwangju Institute of Science and Technology researchers reveal the effect of AIN surface pits on GaN remote epitaxy

GIST researchers found that nano-sized pits on AlN surfaces cause graphene degradation at higher temperatures, leading to GaN film exfoliation failure. The study's results demonstrate the importance of substrate chemical and topographic properties for successful remote epitaxy.

SourceGIST (Gwangju Institute of Science and Technology)·JournalACS Nano·TypeExperimental study·DateSep 12, 2023

Structure formation during freeze casting filmed in 3D and real time

Researchers used X-ray tomoscopy to study freeze casting processes, observing the formation of complex, hierarchically structured materials with large surface areas. The technique provided high spatial and temporal resolution, revealing the dynamics of directional ice crystal growth and the formation of organic-looking structures.

SourceHelmholtz-Zentrum Berlin für Materialien und Energie·JournalAdvanced Functional Materials·TypeExperimental study·DateSep 6, 2023

Gwangju Institute of Science and Technology researchers enhance electron–phonon coupling strength in low-dimensional strontium ruthenate

Researchers demonstrated a 300-fold increase in electron-phonon coupling strength by reducing dimensionality, paving the way for novel engineering opportunities. The enhancement was attributed to non-local nature of coupling in synthetic SRO/STO superlattices.

SourceGIST (Gwangju Institute of Science and Technology)·JournalAdvanced Science·TypeExperimental study·DateJun 21, 2023